ECD-II
Unit 3 Power Amplifier Q1) What is the need of power amplifier?A 1)The input signal to power amplifier needs to be above a certain threshold. Therefore, instead of directly passing the raw audio/RF signal to the power amplifier, it is first pre-amplified using current or voltage amplifiers and sent as input to power amp after making necessary modifications. Consider the block diagram of an audio amplifier and the usage of power amplifier below.
Figure . Block Diagram of Audio Amplifier Here microphone is used as an input source. The magnitude of signal from the microphone is not sufficient for the power amplifier. So first it is pre-amplified where its voltage and current are increased slightly. Then the signal is passed through tone and volume controls circuit which makes aesthetic adjustments to the audio waveform. Finally, the signal is passed through power amplifier and the output from power amp is fed to a speaker.Q 2) Explain the classification of power amplifier?A 2)Classification Based on FrequenciesPower amplifiers are divided into two categories, based on the frequencies .They are as follows. Audio Power Amplifiers − The audio power amplifiers raise the power level of signals that have audio frequency range (20 Hz to 20 KHz). They are also known as Small signal power amplifiers. Radio Power Amplifiers − Radio Power Amplifiers or tuned power amplifiers raise the power level of signals that have radio frequency range (3 KHz to 300 GHz). They are also known as large signal power amplifiers. Classification Based on Mode of OperationThe mode of operation, that is the portion of the input cycle during which collector current flows, the power amplifiers are classified as : Class A Power amplifier − When the collector current flows always during the full cycle of signal, the power amplifier is known as class A power amplifier. Class B Power amplifier − When the collector current flows only during the positive half cycle of the input signal, the power amplifier is known as class B power amplifier. Class C Power amplifier − When the collector current flows for less than half cycle of the input signal, the power amplifier is known as class C power amplifier. Q3) What is Harmonic Distortion?A 3)Harmonic distortion in power amplifiers is mainly caused by the non- linearities of the active elements such as transistors. Non-linearity arises because they are not equally amplified at every point in the input waveform. In different amplifier configurations Class A has the highest linearity, then class AB, then Class B and finally Class C has the worst linearity.Total Harmonic Distortion is a measure of the number of harmonic components present in a signal. It can be defined as the ratio of the sum of the powers of all the harmonic components to the power of the fundamental frequency. THD is defined as the ratio of the RMS amplitude of the higher order harmonic frequencies to the RMS amplitude of the fundamental frequency. THD is usually expressed in percentage.If V1 is the amplitude of the fundamental frequency and V2, V3, V4……..Vn are the amplitudes of the higher order harmonic frequencies, then THD can be expressed as
Q 4) What is frequency distortion?A 4)Frequency distortion happens when the level of intensification differs with frequency.It happens when large no of inputs which must amplify has a fundamental frequency and a large no of frequencies which called harmonic will distort the original signal.
Figure. Frequency Distortion In the figure we can see that input waveforms has a fundamental frequency and second harmonic signal. Their subsequent output wave is shown in the figure at right.The frequency alteration happens when the fundamental frequency syndicates with the second harmonic. By this we can say that Harmonics frequencies are multiples of fundamentalFrequency distortion due to harmonics is constantly an option in amplifier circuitries comprising reactive components like capacitor or inductor.Q 5) Explain Phase distortion?A 5)This type of distortion happens in a non-linear amplifier circuit when there is time delay between input and output waves.If we say that the phase change between the input and the output is zero at the fundamental frequency, the subsequent phase angle postponement will be the alteration amid the harmonic and the fundamental frequencies.
Figure. Phase DistortionQ 6) Explain second harmonics using three- point method?
Figure. Evaluation of Harmonic distortion For a power amplifier with large input swing, it is necessary to express the dynamic transfer curve with respect to the Q point by a power series of the form, Ic = G1ib + G2 i 2b + G3 i3 b ---------------------(1)If the input wave is a simple cosine function of time, then Ib = Ibm cos wt --------------------------------------(2)Then ic = Bo + B1 cos wt + B2 cos 2wt + B3 cos 3wt +-----------------------------(3)Where Bo,B1,B2,B3 are the co-efficient in Fourier series for current that is the total output current is given by ic = I CQ + ic = ICq + B0+B1 coswt + B2 cos2wt +………………(4)Suppose we assume as an approximation that harmonics higher than the fourth are negligible in the above Fourier series, then we have five unknown terms 0, 1 2 3, & 4 To evaluate those, we need output currents at three different value of IBLet us assume that ic=2∆I coswt -----------------------------------------------------(5)Hence IB = IBQ + 2∆i coswt------------------------------------------------------------(6)At wt=0 IB = IBQ + 2∆I ic = Imax --------------------------------------------(7)At wt=π/2 IB= IBQ ic = ICQ ------------------------------------------------(8)At wt=π IB = IBQ -2∆I ic = Imin ----------------------------------------------(9)By combining equations, we get the equations & solving them, we get the following relations,Bo = 1/6 [ Imax+2I1/2 + 2 I-1/2 + Imin] -ICQ ------------------------------------(12)B1 = ¼ [ I max – 2ICQ + I min] -------------------------------------------------------(13)B2 = 1/12 [ Imax -4I1 + 6ICQ – 4I-1/2 + Imin] ------------------------------------(14)The harmonic distortion is defined as D2 = |B1|/|Bo| , D3 =|B2|/|Bo|Where Dn represents the distortion of the nth harmonic. Since this method uses three point on the output waveform to obtain the amplitude of harmonics it is known as three- point method for determining the higher order harmonic distortion.Q 7) Explain class A single ended amplifier?A 7)
Figure. Class A Transformer Coupled Amplifier This is also referred to as single ended power amplifier. The term “single ended” denotes only one transistor is used to distinguish it from the push-pull amplifier using two transistors.Operation:When an ac signal is applied to the base of the transistor the collector current will vary around the operating point Q. To get maximum ac power output, the peak value of collector current due to input ac signal alone should be equal to the zero-signal collector current. To achieve this, the operating point Q is located at the centre of the ac load line by adjusting the biasing circuit (R1, R2 and RE). When ac signal is applied, collector current fluctuates from maximum to minimum (zero), and operating point Q moves up and down the load line. At the peak of the positive half cycle of the input signal, the total collector current Ic max = 2 Ic and collector-emitter – voltage Vcg min = 0 while at the peak of the negative half cycle of the input signal, the collector current Ic min = 0 and collector-emitter voltage Vce max = 2 Vcc. Thus collector-emitter voltage varies in opposite phase to the collector current. The variation of collector voltage appears across primary of the transformer. Now ac voltage is induced in the transformer secondary which in turn develops ac power and supplies to the load.
Figure. Circuit Operation of Class A amplifier Thus power input to the transistor, Ptr = Power drawn from collector supply, Pin (dc) = VCC ICQ and overall efficiency becomes equal to collector efficiency and = Pout (ac)/ VCC ICQ
Thus, for a transformer-coupled class A power amplifier the maximum theoretical efficiency is 50%. In practice, the efficiency of such an amplifier is somewhat less than 50%. It is about 30%.The efficiency of a transformer-coupled class A power amplifier can be given asEfficiency = 50 *{ [Vce max – Vce min]/ [Vce max + Vce min]} %. Q 8) Explain Class B Amplifier?A 8)Class B amplifier is a type of power amplifier where the active device (transistor) conducts only for one half cycle of the input signal. That means the conduction angle is 180° for a Class B amplifier. Since the active device is switched off for half the input cycle, the active device dissipates less power and hence the efficiency is improved. Theoretical maximum efficiency of Class B power amplifier is 78.5%. The schematic of a single ended Class B amplifier and input , output waveforms are shown in the figure below.
From the above circuit it is clear that the base of the transistor Q1 is not biased and the negative half cycle of the input waveform is missing in the output.Even though it improves the power efficiency, it creates a lot of distortion. Only half the information present in the input will be available in the output.Single ended Class B amplifiers are not used in present day practical audio amplifier application and they can be found only in some earlier gadgets.
Figure. Output characteristics of class B amplifierQ 9) Explain cross over distortion?A 9)In the push-pull configuration, the two identical transistors get into conduction, one after the other and the output produced will be the combination of both. When the signal changes or crosses over from one transistor to the other at the zero -voltage point, it produces an amount of distortion to the output wave shape. For a transistor to conduct, the base emitter junction should cross 0.7v, the cut off voltage. The time taken for a transistor to get ON from OFF or to get OFF from ON state is called the transition period. At the zero- voltage point, the transition period of switching over the transistors from one to the other, has its effect which leads to the instances where both the transistors are OFF at a time. Such instances can be called as Flat spot or Dead band on the output wave shape. Waveform:-
Method to overcome: This cross over distortion can be eliminated if the conduction of the amplifier is more than one half cycle, so that both the transistors won’t be OFF at the same time. The remedy is to use Class AB amplifier. Q 10) Explain complimentary symmetry amplifier?A 10)
Working: The above circuit employs a NPN transistor and a PNP transistor connected in push pull configuration. When the input signal is applied, during the positive half cycle of the input signal, the NPN transistor conducts and the PNP transistor cuts off. During the negative half cycle, the NPN transistor cuts off and the PNP transistor conducts.In this way, the NPN transistor amplifies during positive half cycle of the input, while PNP transistor amplifies during negative half cycle of the input. As the transistors are both complement to each other, act symmetrically while being connected in push pull configuration of class B, this circuit is termed as Complementary symmetry push pull class B amplifier.
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THD = {√(V2²+V3²+V4²………+Vn²)} / V1----------------------------------(1)
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Under condition of development of maximum ac power, voltage swings from Vce max to zero and collector current from Ic max to zero. So Vrms = 1/√2 { [Vce max – Vce min]/ 2 } = Vce max/2√2 = 2VCC/2√2 = VCC/√2 And Irms = 1/√2 { [Ic max – Ic min]/ 2 } = Ic max/2√2 = 2ICQ/2√2 = ICQ/√2
AC power developed across the load, Pout (ac) = Vrms Irms = (VCC ICQ)/2 Collector efficiency = Pout (ac)/ (VCC ICQ)/2 ÷ VCC ICQ = 0.5 or 50%. |
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